| Literature DB >> 33338380 |
Hao Wu1, John Nance2, Seyed Armin Razavi1, David Lujan3, Bingqian Dai1, Yuxiang Liu1, Haoran He1, Baoshan Cui1, Di Wu1, Kin Wong1, Kemal Sobotkiewich3, Xiaoqin Li3, Gregory P Carman2, Kang L Wang1.
Abstract
Symmetry breaking is a characteristic to determine which branch of a bifurcation system follows upon crossing a critical point. Specifically, in spin-orbit torque (SOT) devices, a fundamental question arises: how can the symmetry of the perpendicular magnetic moment be broken by the in-plane spin polarization? Here, we show that the chiral symmetry breaking by the antisymmetric Dzyaloshinskii-Moriya interaction (DMI) can induce the deterministic SOT switching of the perpendicular magnetization. By introducing a gradient of saturation magnetization or magnetic anisotropy, the dynamic noncollinear spin textures are formed under the current-driven SOT, and thus, the chiral symmetry of these dynamic spin textures is broken by the DMI, resulting in the deterministic magnetization switching. We introduce a strategy to induce an out-of-plane (z) gradient of magnetic properties as a practical solution for the wafer-scale manufacture of SOT devices.Entities:
Keywords: Dzyaloshinskii−Moriya interaction; chiral symmetry breaking; magnetic gradient; spin−orbit torque
Year: 2020 PMID: 33338380 DOI: 10.1021/acs.nanolett.0c03972
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189